H2020Индивидуална стипендия2019–2021

ANAFAUNA · Implementation of soil fauna effects into the forest ecosystem model ANAFORE

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2019-09-01 → 2021-08-31
Финансиране от ЕС
160 800 €
Участници
1
Схема
MSCA-IF

Линиите свързват координатора с партньорите.

Накратко на български

Влиянието на почвената фауна върху движението на водата и органичната материя се изследва чрез конкретни процеси като разрояването на почвата. Тези данни помагат за създаването на по-точни модели, които предвиждат как климатичните промени влияят върху горските екосистеми.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Implementation of soil fauna effects into the forest ecosystem model ANAFORE

Ecosystem models such as ANAFORE are models that dynamically simulate pools and fluxes of carbon, water, nitrogen and other nutrients through an ecosystem. These models originally served as tools to predict plant production and were therefore highly plant-oriented. Increasingly, the recognition of other ecosystem services has created the demand for more complex process-based soil models. Only models that account for all key interactions between climate, plants and soil can become versatile tools to predict the effect of different management or future global changes on ecosystem services. Increasingly, the active role of microbiota has been recognized in models as an important driver for many soil processes. Furthermore, implementing soil fauna effects such as bioturbation, aggregation, fragmentation, biopore formation, and soil foodweb interactions into ecosystems has been suggested as the next step. The KEYLINK model steps up to this challenge and simulates soil fauna effects both on soil organic matter dynamics and hydrology, with the final goal of serving as a soil module for the next generation of ecosystem models that allow simulating effects of climate change and management on ecosystems, including its soil functions. However, the development of KEYLINK and other similar models has been impeded by the lack of empirical data available to inform such models. The overall objective of ANAFAUNA was to carry out empirical studies that contribute to the development of KEYLINK. Such studies allow i) to test specific assumptions made in first version of KEYLINK and ii) to validate the current version of the model as a whole. This dedicated effort was carried out in two different systems: (i) a field mesocosm experiment (REGIMESHIFT) simulating climate change towards more persistent precipitation regimes, (ii) a laboratory mesocosm experiment (EARTHWORM) testing the effect of earthworms on soil structure and C cycling. These matched each other well because the former system contained plants but not earthworms while the latter contained earthworms but not plant roots allowing to disentangle these two sources of macroporosity. Each system was used to test selected assumptions made in the current KEYLINK model. While several assumptions of the model were supported by the experimental results, some others were not. The results highlight that soil structure is dynamic but cannot be simply estimated from other soil properties such as total or microbial C, roots, fungal or earthworm biomass. Instead, cumulative C inputs or earthworm activity over time might be more important and could be a way forward in modelling aggregation or burrowing in KEYLINK. Furthermore, some interesting and potentially important patterns were observed that will be implemented in KEYLINK, namely the changes in soil water repellency and its impact on infiltration. Altogether, these findings will result in an improved version of KEYLINK. Furthermore, the project brought important evidence of the detrimental effect of persistent precipitation regimes on soil.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

Understanding soil processes and their role in ecosystem functioning is essential for effective protection, restoration and sustainable use of soils and terrestrial ecosystems. Forest ecosystem models dynamically simulate fluxes of carbon, water, nitrogen and other nutrients through a forest ecosystem. Only models that account for all key interactions between climate, soil and plants can become versatile and reliable tools to predict the effect of different management strategies or future global changes on forests and soils. The effect of soil fauna has been so far neglected in most of similar models. However, with our increasing understanding of the crucial role of fauna on many processes, there is a general consensus on the need to implement these effects into ecosystem models. The main research question of this project is: Does a model that includes an active role of soil fauna provide better prediction of soil processes than previous simpler models? ANAFORE is a stand-scale mechanistic forest model with a detailed soil model. The specific objectives of this project are 1) to develop a new soil submodel that will account for important effects of soil fauna on the simulated fluxes of water, carbon, nitrogen and phosphorus; and integrate it into the ANAFORE model. The modeled effects include fragmentation, bioturbation, aggregation, macropore formation and foodweb effects on soil organic matter decomposition, 2) to optimize and validate the new model using: i) historical experimental data obtained during long-term research at Sokolov post-mining ecosystems LTER site, ii) additional literature and original data collected during the project for modelling purposes; 3) to compare performance of the new ANAFORE soil submodel with the previous version of ANAFORE and the Yasso model as an example of a simple model that predicts organic matter decomposition only based on litter quality and abiotic factors.

Оригинален текст от CORDIS (на английски).

Участници

  • UNIVERSITEIT ANTWERPEN · AntwerpenКоординаторБелгия

Връзки

Данни: CORDIS, © Европейски съюз